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Defective dimerization of FoF1‐ATP synthase secondary to glycation favors mitochondrial energy deficiency in cardiomyocytes during aging

Aged cardiomyocytes develop a mismatch between energy demand and supply, the severity of which determines the onset of heart failure, and become prone to undergo cell death. The FoF1‐ATP synthase is the molecular machine that provides >90% of the ATP consumed by healthy cardiomyocytes and is prop...

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Autores principales: Bou‐Teen, Diana, Fernandez‐Sanz, Celia, Miro‐Casas, Elisabet, Nichtova, Zuzana, Bonzon‐Kulichenko, Elena, Casós, Kelly, Inserte, Javier, Rodriguez‐Sinovas, Antonio, Benito, Begoña, Sheu, Shey‐Shing, Vázquez, Jesús, Ferreira‐González, Ignacio, Ruiz‐Meana, Marisol
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8920436/
https://www.ncbi.nlm.nih.gov/pubmed/35233924
http://dx.doi.org/10.1111/acel.13564
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author Bou‐Teen, Diana
Fernandez‐Sanz, Celia
Miro‐Casas, Elisabet
Nichtova, Zuzana
Bonzon‐Kulichenko, Elena
Casós, Kelly
Inserte, Javier
Rodriguez‐Sinovas, Antonio
Benito, Begoña
Sheu, Shey‐Shing
Vázquez, Jesús
Ferreira‐González, Ignacio
Ruiz‐Meana, Marisol
author_facet Bou‐Teen, Diana
Fernandez‐Sanz, Celia
Miro‐Casas, Elisabet
Nichtova, Zuzana
Bonzon‐Kulichenko, Elena
Casós, Kelly
Inserte, Javier
Rodriguez‐Sinovas, Antonio
Benito, Begoña
Sheu, Shey‐Shing
Vázquez, Jesús
Ferreira‐González, Ignacio
Ruiz‐Meana, Marisol
author_sort Bou‐Teen, Diana
collection PubMed
description Aged cardiomyocytes develop a mismatch between energy demand and supply, the severity of which determines the onset of heart failure, and become prone to undergo cell death. The FoF1‐ATP synthase is the molecular machine that provides >90% of the ATP consumed by healthy cardiomyocytes and is proposed to form the mitochondrial permeability transition pore (mPTP), an energy‐dissipating channel involved in cell death. We investigated whether aging alters FoF1‐ATP synthase self‐assembly, a fundamental biological process involved in mitochondrial cristae morphology and energy efficiency, and the functional consequences this may have. Purified heart mitochondria and cardiomyocytes from aging mice displayed an impaired dimerization of FoF1‐ATP synthase (blue native and proximity ligation assay), associated with abnormal mitochondrial cristae tip curvature (TEM). Defective dimerization did not modify the in vitro hydrolase activity of FoF1‐ATP synthase but reduced the efficiency of oxidative phosphorylation in intact mitochondria (in which membrane architecture plays a fundamental role) and increased cardiomyocytes’ susceptibility to undergo energy collapse by mPTP. High throughput proteomics and fluorescence immunolabeling identified glycation of 5 subunits of FoF1‐ATP synthase as the causative mechanism of the altered dimerization. In vitro induction of FoF1‐ATP synthase glycation in H9c2 myoblasts recapitulated the age‐related defective FoF1‐ATP synthase assembly, reduced the relative contribution of oxidative phosphorylation to cell energy metabolism, and increased mPTP susceptibility. These results identify altered dimerization of FoF1‐ATP synthase secondary to enzyme glycation as a novel pathophysiological mechanism involved in mitochondrial cristae remodeling, energy deficiency, and increased vulnerability of cardiomyocytes to undergo mitochondrial failure during aging.
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spelling pubmed-89204362022-03-18 Defective dimerization of FoF1‐ATP synthase secondary to glycation favors mitochondrial energy deficiency in cardiomyocytes during aging Bou‐Teen, Diana Fernandez‐Sanz, Celia Miro‐Casas, Elisabet Nichtova, Zuzana Bonzon‐Kulichenko, Elena Casós, Kelly Inserte, Javier Rodriguez‐Sinovas, Antonio Benito, Begoña Sheu, Shey‐Shing Vázquez, Jesús Ferreira‐González, Ignacio Ruiz‐Meana, Marisol Aging Cell Research Articles Aged cardiomyocytes develop a mismatch between energy demand and supply, the severity of which determines the onset of heart failure, and become prone to undergo cell death. The FoF1‐ATP synthase is the molecular machine that provides >90% of the ATP consumed by healthy cardiomyocytes and is proposed to form the mitochondrial permeability transition pore (mPTP), an energy‐dissipating channel involved in cell death. We investigated whether aging alters FoF1‐ATP synthase self‐assembly, a fundamental biological process involved in mitochondrial cristae morphology and energy efficiency, and the functional consequences this may have. Purified heart mitochondria and cardiomyocytes from aging mice displayed an impaired dimerization of FoF1‐ATP synthase (blue native and proximity ligation assay), associated with abnormal mitochondrial cristae tip curvature (TEM). Defective dimerization did not modify the in vitro hydrolase activity of FoF1‐ATP synthase but reduced the efficiency of oxidative phosphorylation in intact mitochondria (in which membrane architecture plays a fundamental role) and increased cardiomyocytes’ susceptibility to undergo energy collapse by mPTP. High throughput proteomics and fluorescence immunolabeling identified glycation of 5 subunits of FoF1‐ATP synthase as the causative mechanism of the altered dimerization. In vitro induction of FoF1‐ATP synthase glycation in H9c2 myoblasts recapitulated the age‐related defective FoF1‐ATP synthase assembly, reduced the relative contribution of oxidative phosphorylation to cell energy metabolism, and increased mPTP susceptibility. These results identify altered dimerization of FoF1‐ATP synthase secondary to enzyme glycation as a novel pathophysiological mechanism involved in mitochondrial cristae remodeling, energy deficiency, and increased vulnerability of cardiomyocytes to undergo mitochondrial failure during aging. John Wiley and Sons Inc. 2022-03-02 2022-03 /pmc/articles/PMC8920436/ /pubmed/35233924 http://dx.doi.org/10.1111/acel.13564 Text en © 2022 The Authors. Aging Cell published by Anatomical Society and John Wiley & Sons Ltd. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Bou‐Teen, Diana
Fernandez‐Sanz, Celia
Miro‐Casas, Elisabet
Nichtova, Zuzana
Bonzon‐Kulichenko, Elena
Casós, Kelly
Inserte, Javier
Rodriguez‐Sinovas, Antonio
Benito, Begoña
Sheu, Shey‐Shing
Vázquez, Jesús
Ferreira‐González, Ignacio
Ruiz‐Meana, Marisol
Defective dimerization of FoF1‐ATP synthase secondary to glycation favors mitochondrial energy deficiency in cardiomyocytes during aging
title Defective dimerization of FoF1‐ATP synthase secondary to glycation favors mitochondrial energy deficiency in cardiomyocytes during aging
title_full Defective dimerization of FoF1‐ATP synthase secondary to glycation favors mitochondrial energy deficiency in cardiomyocytes during aging
title_fullStr Defective dimerization of FoF1‐ATP synthase secondary to glycation favors mitochondrial energy deficiency in cardiomyocytes during aging
title_full_unstemmed Defective dimerization of FoF1‐ATP synthase secondary to glycation favors mitochondrial energy deficiency in cardiomyocytes during aging
title_short Defective dimerization of FoF1‐ATP synthase secondary to glycation favors mitochondrial energy deficiency in cardiomyocytes during aging
title_sort defective dimerization of fof1‐atp synthase secondary to glycation favors mitochondrial energy deficiency in cardiomyocytes during aging
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8920436/
https://www.ncbi.nlm.nih.gov/pubmed/35233924
http://dx.doi.org/10.1111/acel.13564
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